College of Food Science and Engineering, Shandong Agricultural University, Taian 271018, China.
Qilu University of Technology (Shandong Academy of Sciences), Shandong Analysis and Test Center, Key Laboratory for Applied Technology of Sophisticated Analytical Instruments of Shandong Province, Jinan 250014, China.
J Hazard Mater. 2021 Feb 5;403:123917. doi: 10.1016/j.jhazmat.2020.123917. Epub 2020 Sep 15.
Food and environmental safety issues attributable to the polybrominated diphenyl ethers (PBDEs) are gaining increasing attention, and these urge us to establish a high-performance sample-handling technique. In this study, an outstanding adsorption performance with short adsorption time (10 min) was achieved for PBDEs using a novel synthesized dispersive solid-phase extraction adsorbent, a reticulated covalent organic framework with N/O functional groups (i.e., imine linkage, triazine, and methoxy) (TAPT-DMTA-COF). By conducting sufficient experimentation and theoretical simulation on adsorption mechanism, the halogen bond between electronegative N/O atoms of TAPT-DMTA-COF and the electropositive Br atoms of PBDEs were observed to play a more pivotal role than π-π, C-H…π interactions, and hydrophobic effects. Furthermore, the positive linear relation between calculated adsorption energy and Br content directly clarified that enrichment behavior of PBDEs can be attributed to halogen bonding. These data implied that integrated nanostructure (i.e., N/O functional groups and reticulated architecture) effectively enhanced adsorption capacity. In case of PBDE analysis, this approach achieved excellent results with low limits of detection (0.03-0.13 ng L). Finally, the promising potential applications of aforementioned method were verified by spiking water, fish, and milk samples with PBDEs; good PBDEs recoveries were obtained.
食品和环境安全问题归因于多溴二苯醚(PBDEs),这引起了人们越来越多的关注,促使我们建立一种高性能的样品处理技术。在本研究中,使用一种新型合成的分散固相萃取吸附剂,具有 N/O 官能团(即亚胺键、三嗪和甲氧基)的网状共价有机骨架(即 TAPT-DMTA-COF),实现了对 PBDEs 的出色吸附性能和短吸附时间(10 分钟)。通过对吸附机制进行充分的实验和理论模拟,观察到 TAPT-DMTA-COF 的电负性 N/O 原子与 PBDEs 的正电性 Br 原子之间的卤键比π-π、C-H…π 相互作用和疏水作用发挥更关键的作用。此外,计算出的吸附能与 Br 含量之间的正线性关系直接表明,PBDEs 的富集行为归因于卤键。这些数据表明,集成的纳米结构(即 N/O 官能团和网状结构)有效提高了吸附能力。在 PBDE 分析方面,该方法在检测限低(0.03-0.13ngL)的情况下取得了优异的结果。最后,通过向水、鱼和牛奶样品中添加 PBDEs 验证了上述方法的潜在应用,得到了良好的 PBDEs 回收率。